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Ferroptosis boosting system based on a sonodynamic therapy cascade-augmented strategy for triple-negative breast
Juying Zhang1,2, Hanmei Li1,2, Litao Ye1,2
1School of Medical Imaging, North Sichuan Medical College, Nanchong, Sichuan 637000, China.
Abstract:
One of the novel forms of programmed cell death, ferroptosis, has recently emerged as a hopeful treatment strategy for triple-negative breast cancer (TNBC). However, insufficient levels of intracellular reactive oxygen species (ROS) and high levels of ROS scavengers in the tumor microenvironment (TME), such as glutathione (GSH), hamper the efficacy of ferroptosis therapy. In this study, the introduction of manganese dioxide nanoparticles (MnO2 NPs) generated cytotoxic hydroxyl radicals (⋅OH) in the TME. Importantly, MnO2 NPs act as a nanosensitizer by consuming H2O2/GSH in the TME, generating oxygen (O2) to relieve the oxygen deficiency of tumors, induce tumor oxidative stress and ultimately enhance SDT-induced ferroptosis. Additionally, oxygen, as an ultrasound contrast agent, enables the visualization of the TNBC treatment process. Meanwhile, GSH depletion in the TME leads to failure of the major cellular system defending against ferroptosis, which also promotes the accumulation of lipid peroxidation in tumor tissue. Specifically, robust autophagy induced by ROS enhances the intracellular iron pool by breaking down ferritin, thereby promoting ferroptosis in cancer cells, leading to the optimal antitumor effect. Consequently, a ferroptosis boosting system that simultaneously encapsulates MnO2 NPs and chlorin e6 (Ce6) was constructed for the intervention of TNBC. Both the in vitro and in vivo results demonstrated that Ce6-MnO2-BSA nanoparticles can generate a significant ROS storm under ultrasound irradiation, eliminating GSH and inducing an autophagic response that increases the effectiveness of ferroptosis, thus, inhibiting the growth of TNBC without obvious toxic side effects. This effective strategy can cascade-augment cancer cell ferroptosis, providing a new perspective for the clinical treatment of TNBC.
Insights
Manganese dioxide nanoparticles boost ferroptosis therapy for triple-negative breast cancer by generating reactive oxygen species (ROS) and depleting glutathione (GSH), enhancing treatment efficacy.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Ferroptosis, a novel cell death pathway, shows promise for triple-negative breast cancer (TNBC) treatment.
- Tumor microenvironment factors like low reactive oxygen species (ROS) and high glutathione (GSH) limit ferroptosis efficacy.
- Manganese dioxide nanoparticles (MnO2 NPs) are explored to overcome these limitations.
Purpose of the Study:
- To develop a ferroptosis-boosting system using MnO2 NPs for enhanced TNBC therapy.
- To investigate the mechanism of MnO2 NPs in sensitizing tumors to ferroptosis.
- To evaluate the therapeutic efficacy and safety of the developed system.
Main Methods:
- Construction of a Ce6-MnO2-BSA nanoparticle system encapsulating MnO2 NPs and chlorin e6.
- Utilizing ultrasound irradiation to trigger ROS generation and oxygen production.
- Assessing the impact on GSH levels, oxidative stress, autophagy, and ferroptosis in vitro and in vivo.
Main Results:
- MnO2 NPs consumed GSH and H2O2, generating ROS and oxygen, relieving tumor hypoxia.
- Ultrasound-triggered nanoparticles induced a ROS storm, depleting GSH and promoting ferroptosis.
- The system enhanced autophagy, increased intracellular iron, and effectively inhibited TNBC growth with minimal toxicity.
Conclusions:
- The Ce6-MnO2-BSA nanoparticle system effectively enhances ferroptosis in TNBC.
- This strategy overcomes TME limitations and offers a promising approach for TNBC treatment.
- The developed system provides a new perspective for ferroptosis-based cancer therapy.
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